The value of 20C0-20C1-20C8 is

Given ^20C_0+^20C_1+⋯+^20C_8 We know that, ^20C_0+^20C_1+⋯+^20C_20 = 20^20 ⇒ 2[ ^20C_0+^20C_1+⋯+^20C_9]+^20C_10=2^20 ⇒^20C_0+^20C_1+⋯+^20C_9 = 2^20 nbsp; ^2 ...

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Byju's Answer

Standard XII

Mathematics

Sum of Coefficients of All Terms

The value of ...

Question

The value of $^{20} C_{0} +^{20} C_{1} + \dots +^{20} C_{8}$ is

2^{19} - \frac{(^{20} C_{10} +^{20} C_{9})}{2}

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2^{19} - \frac{(^{20} C_{10} + 2 \times^{20} C_{9})}{2}

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2^{19} - \frac{^{20} C_{10}}{2}

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2^{19} - \frac{(2 \times^{20} C_{10} +^{20} C_{9})}{2}

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Solution

The correct option is B $2^{19} - \frac{(^{20} C_{10} + 2 \times^{20} C_{9})}{2}$
Given $^{20} C_{0} +^{20} C_{1} + \dots +^{20} C_{8}$
We know that,
$^{20} C_{0} +^{20} C_{1} + \dots +^{20} C_{20} = 20^{20} \Rightarrow 2 [^{20} C_{0} +^{20} C_{1} + \dots +^{20} C_{9}] +^{20} C_{10} = 2^{20} \Rightarrow^{20} C_{0} +^{20} C_{1} + \dots +^{20} C_{9} = \frac{2^{20} -^{20} C_{10}}{2} \Rightarrow^{20} C_{0} +^{20} C_{1} + \dots +^{20} C_{8} = 2^{19} - \frac{(^{20} C_{10} + 2^{20} C_{9})}{2}$

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Similar questions

Q. The value of

^{20} C_{0} +^{20} C_{1} + \dots +^{20} C_{8}

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^{20} C_{0} +^{20} C_{1} +^{20} C_{2} +^{20} C_{4} +^{20} C_{12} +^{20} C_{13} +^{20} C_{14} +^{20} C_{15}

Q. The value of

r

for which

^{20} C_{r}^{20} C_{0} +^{20} C_{r - 1}^{20} C_{1} +^{20} C_{r - 2}^{20} C_{2} + \dots +^{20} C_{0}^{20} C_{r}

is maximum, is :

Q. The value of

r

for which

^{20} C_{r}^{20} C_{0} +^{20} C_{r - 1}^{20} C_{1} +^{20} C_{r - 2}^{20} C_{2} + \dots +^{20} C_{0}^{20} C_{r}

is maximum, is :

Q. The value of

^{20} C_{0} -^{20} C_{1} +^{20} C_{2} -^{20} C_{3} + \dots +^{20} C_{10}

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Sum of Coefficients of All Terms

Standard XII Mathematics

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The value of 20C0+20C1+⋯+20C8 is

The correct option is B 219−( 20C10+2× 20C9)2Given 20C0+20C1+⋯+20C8 We know that, 20C0+20C1+⋯+20C20=2020⇒2[ 20C0+20C1+⋯+20C9]+20C10=220⇒20C0+20C1+⋯+20C9=220−20C102⇒20C0+20C1+⋯+20C8=219−(20C10+2 20C9)2

The value of $^{20} C_{0} +^{20} C_{1} + \dots +^{20} C_{8}$ is